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Question
The following electrochemical cell is set up at 298 K:
\[\ce{Zn | Zn^{2+}_{ (aq)} (1 M) || Cu^{2+}_{ (aq)} (1 M) | Cu}\]
Given: \[\ce{E^{\circ}_{Zn^{2+}/Zn}}\] = −0.761 V, \[\ce{E^{\circ}_{Cu^{2+}/Cu}}\] = +0.339 V
Write the cell reaction.
Chemical Equations/Structures
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Solution
\[\ce{Zn | Zn^{2+}_{ (aq)} (1 M) || Cu^{2+}_{ (aq)} (1 M) | Cu}\]
\[\ce{E^{\circ}_{Zn^{2+}/Zn}}\] = −0.761 V,
\[\ce{E^{\circ}_{Cu^{2+}/Cu}}\] = +0.339 V
Anode: Since zinc has a more negative standard reduction potential, it undergoes oxidation.
Cathode: Copper has a more positive standard reduction potential it undergoes reduction.
Cell reaction: \[\ce{Zn_{(s)} + Cu^{2+}_{ (aq)} −> Zn^{2+}_{ (aq)} + Cu_{(s)}}\]
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Chapter 3: Electrochemistry - QUESTIONS FROM ISC EXAMINATION PAPERS [Page 215]
